Three Blind Predictions from a Number-Theoretic Framework for Fundamental Physical Constants.

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1. Verfasser: James Fox
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Sprache:Englisch
Veröffentlicht: Zenodo 2026
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_version_ 1866901746061672448
author James Fox
author_facet James Fox
contents <p>We present three falsifiable numerical predictions derived from a framework that expresses fundamental physical constants as closed-form combinations of Fibonacci numbers, Lucas numbers, triangular numbers, tetrahedral numbers, and primes. This framework has achieved 2,559 exact matches across 27 domains of physics. We specifically predict: (1) the proton charge radius <span>r_p = 0.84075</span> fm for the CODATA 2026 adjustment; (2) the silicon-28 lattice parameter <span>a = 5.4310206</span> Å; and (3) the muon electric dipole moment <span>d_mu = 2.51 x 10^{-22}$</span> e·cm. These predictions are registered to establish temporal priority prior to experimental verification.</p>
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spellingShingle Three Blind Predictions from a Number-Theoretic Framework for Fundamental Physical Constants.
James Fox
Fundamental Physical Constants
Number Theory
CODATA 2026
Proton Charge Radius
Silicon-28 Lattice
Muon Electric Dipole Moment
Fibonacci Physics
Triangular Physics
Lucas Physics
Jacobian Physics
<p>We present three falsifiable numerical predictions derived from a framework that expresses fundamental physical constants as closed-form combinations of Fibonacci numbers, Lucas numbers, triangular numbers, tetrahedral numbers, and primes. This framework has achieved 2,559 exact matches across 27 domains of physics. We specifically predict: (1) the proton charge radius <span>r_p = 0.84075</span> fm for the CODATA 2026 adjustment; (2) the silicon-28 lattice parameter <span>a = 5.4310206</span> Å; and (3) the muon electric dipole moment <span>d_mu = 2.51 x 10^{-22}$</span> e·cm. These predictions are registered to establish temporal priority prior to experimental verification.</p>
title Three Blind Predictions from a Number-Theoretic Framework for Fundamental Physical Constants.
topic Fundamental Physical Constants
Number Theory
CODATA 2026
Proton Charge Radius
Silicon-28 Lattice
Muon Electric Dipole Moment
Fibonacci Physics
Triangular Physics
Lucas Physics
Jacobian Physics
url https://doi.org/10.5281/zenodo.18616167